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Tunable large-scale regular array of topological defects in nematic liquid crystals

机译:向列型液晶中可调谐的大规模规则拓扑缺陷阵列

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Arrays of topological defects in liquid crystals are fascinating systems, as isotropic and anisotropic phases of the same material can co-exist and be arranged in regular periodic structures. The arrays thus form spatially-varying optical pathways, in patterns that can be used for optics, as novel photonic structures, optical gratings, lenses or metamaterials, and for molecular and colloidal self-assembly. However, for practical applications, it is necessary that the arrays are tunable without direct intervention of the experimenters. Here, we demonstrate single-domain, tunable arrays of topological defects in nematic liquid crystals, using a method inspired by the recent work by Orihara and colleagues. The regularity and domain size of the defect arrays are obtained by using periodic lateral modulation of electric fields generated by incompletely etched electrodes with periodic conductivity. The period of the arrays, i.e. the characteristic spacing between defects, is controllable not only through the applied electric field strength and frequency but also by varying the size of the patterned electrodes. We believe these results open a new way to design and fabricate large-scale, single-domain, tunable and scalable device architectures that are optically functional.
机译:液晶中的拓扑缺陷阵列是引人入胜的系统,因为同一材料的各向同性和各向异性相可以共存,并以规则的周期性结构排列。因此,阵列以可用于光学的图案形成空间变化的光学路径,所述光学路径可用作新颖的光子结构,光栅,透镜或超材料,以及用于分子和胶体自组装。但是,对于实际应用,必须在无需实验人员直接干预的情况下对阵列进行可调。在这里,我们使用Orihara及其同事的最新工作启发的方法,证明了向列液晶中拓扑缺陷的单域可调谐阵列。缺陷阵列的规则性和畴尺寸是通过使用由周期性电导率的不完全蚀刻电极产生的电场的周期性横向调制而获得的。阵列的周期,即缺陷之间的特征间隔,不仅可以通过施加的电场强度和频率来控制,而且可以通过改变图案化电极的大小来控制。我们相信这些结果为设计和制造具有光学功能的大规模,单域,可调和可扩展设备架构开辟了一条新途径。

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